Natterer Fabian D, Patthey François, Bilgeri Tobias, Forrester Patrick R, Weiss Nicolas, Brune Harald
Institute of Physics, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.
Rev Sci Instrum. 2019 Jan;90(1):013706. doi: 10.1063/1.5065384.
Electron spin resonance with a scanning tunneling microscope (ESR-STM) combines the high energy resolution of spin resonance spectroscopy with the atomic scale control and spatial resolution of STM. Here we describe the upgrade of a helium-3 STM with a 2D vector-field magnet (B = 8.0 T, B = 0.8 T) to an ESR-STM. The system is capable of delivering radio frequency (RF) power to the tunnel junction at frequencies up to 30 GHz. We demonstrate magnetic field-sweep ESR for the model system TiH/MgO/Ag(100) and find a magnetic moment of (1.004 ± 0.001) μ. Our upgrade enables to toggle between a DC mode, where the STM is operated with the regular control electronics, and an ultrafast-pulsed mode that uses an arbitrary waveform generator for pump-probe spectroscopy or reading of spin-states. Both modes allow for simultaneous radiofrequency excitation, which we add via a resistive pick-off tee to the bias voltage path. The RF cabling from room temperature to the 350 mK stage has an average attenuation of 18 dB between 5 and 25 GHz. The cable segment between the 350 mK stage and the STM tip presently attenuates an additional 34 dB from 10 to 26 GHz and 38 dB between 20 and 30 GHz. We discuss our transmission losses and indicate ways to reduce this attenuation. We finally demonstrate how to synchronize the arrival times of RF and DC pulses coming from different paths to the STM junction, a prerequisite for future pulsed ESR experiments.
扫描隧道显微镜电子自旋共振(ESR - STM)将自旋共振光谱的高能量分辨率与STM的原子尺度控制和空间分辨率相结合。在此,我们描述了将配备二维矢量场磁体(B = 8.0 T,B = 0.8 T)的³He STM升级为ESR - STM的过程。该系统能够在高达30 GHz的频率下向隧道结输送射频(RF)功率。我们展示了模型系统TiH/MgO/Ag(100)的磁场扫描ESR,并发现磁矩为(1.004 ± 0.001) μ。我们的升级使得能够在直流模式(STM使用常规控制电子设备运行)和超快脉冲模式之间切换,超快脉冲模式使用任意波形发生器进行泵浦 - 探测光谱或自旋态读取。两种模式都允许同时进行射频激发,我们通过电阻分路三通将其添加到偏置电压路径中。从室温到350 mK平台的RF电缆在5至25 GHz之间的平均衰减为18 dB。350 mK平台与STM针尖之间的电缆段目前在10至26 GHz之间额外衰减34 dB,在20至30 GHz之间衰减38 dB。我们讨论了传输损耗并指出了降低这种衰减的方法。我们最终展示了如何同步来自不同路径的RF和DC脉冲到达STM结的时间,这是未来脉冲ESR实验的一个先决条件。